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Design and analysis of dynamic thermal management in chip multiprocessors (CMPS).

机译:芯片多处理器(CMPS)中动态热管理的设计和分析。

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摘要

Chip Multiprocessors (CMPs) have been prevailing in the modern microprocessor market. As the significant heat is converted by the ever-increasing power density and current leakage, the raised operating temperature in a chip has already threatened the system's reliability and led the thermal control to be one of the most important issues needed to be addressed immediately in chip designs. Due to the cost and complexity of designing thermal packaging, many Dynamic Thermal Management (DTM) schemes have been widely adopted in modern processors.;In this study, we focus on developing a simple and accurate thermal model, which provides a scheduling decision for running tasks. And we show how to design an efficient DTM scheme with negligible performance overhead. First, we propose an efficient DTM scheme for multimedia applications that tackles the thermal control problem in a unified manner. A DTM scheme for multimedia applications makes soft realtime scheduling decisions based on statistical characteristics of multimedia applications. Specifically, we model application execution characteristics as the probability distribution of the number of cycles required to decode frames. Our DTM scheme for multimedia applications has been implemented on Linux in two mobile processors providing variable clock frequencies in an Intel Pentium-M processor and an Intel Atom processor. In order to evaluate the performance of the proposed DTM scheme, we exploit two major codecs, MPEG-4 and H.264/AVC based on various frame resolutions. Our results show that our DTM scheme for multimedia applications lowers the overall temperature by 4°C and the peak temperature by 6°C (up to 10°C), while maintaining frame drop ratio under 5% compared to existing DTM schemes for multimedia applications. Second, we propose a lightweight online workload estimation using the cumulative distribution function and architectural information via Performance Monitoring Counters (PMC) to observe the processes dynamic workload behaviors. We also present an accurate thermal model for CMP architectures to analyze the thermal correlation effects by profiling the thermal impacts from neighboring cores under the specific workload. Hence, according to the estimated workload characteristics and thermal correlation effects, we can estimate the future temperature of each core more accurately.;We implement a DTM scheme considering workload characteristics and thermal correlation effects on real machines, an Intel Quad-Core Q6600 system and Dell PowerEdge 2950 (dual Intel Xeon E5310 Quad-Core) system, running applications ranging from multimedia applications to several benchmarks. Experiments results show that our DTM scheme reduces the peak temperature by 8% with 0.54% performance overhead compared to Linux Standard Scheduler, while existing DTM schemes reduce peak temperature by 4% with up to 50% performance overhead.
机译:芯片多处理器(CMP)在现代微处理器市场中一直占主导地位。由于不断增加的功率密度和电流泄漏会转化为大量热量,因此芯片中工作温度的升高已经威胁到系统的可靠性,并导致热控制成为需要立即在芯片中解决的最重要问题之一。设计。由于设计热包装的成本和复杂性,许多动态热管理(DTM)方案已被现代处理器广泛采用。;在本研究中,我们着重于开发简单而准确的热模型,该模型为运行提供了调度决策任务。并且,我们展示了如何设计性能开销可忽略不计的高效DTM方案。首先,我们为多媒体应用提出了一种有效的DTM方案,该方案以统一的方式解决了热控制问题。用于多媒体应用程序的DTM方案根据多媒体应用程序的统计特性做出软实时调度决策。具体来说,我们将应用程序执行特征建模为解码帧所需的周期数的概率分布。我们的多媒体应用程序DTM方案已在Linux上的两个移动处理器中实现,它们在Intel Pentium-M处理器和Intel Atom处理器中提供可变的时钟频率。为了评估提出的DTM方案的性能,我们基于各种帧分辨率开发了两个主要的编解码器MPEG-4和H.264 / AVC。我们的结果表明,与现有的多媒体应用DTM方案相比,我们针对多媒体应用的DTM方案可将整体温度降低4°C,将峰值温度降低6°C(最高10°C),同时将丢帧率保持在5%以下。其次,我们提出了一种轻量级的在线工作量估计,该工作量通过性能监视计数器(PMC)使用累积分布函数和体系结构信息来观察流程的动态工作量行为。我们还为CMP架构提供了一个精确的热模型,以通过分析特定工作负载下来自相邻内核的热影响来分析热相关效应。因此,根据估计的工作负载特征和热相关效应,我们可以更准确地估计每个内核的未来温度。;我们实施了一种DTM方案,其中考虑了工作负载特征和热相关效应对真实机器,英特尔四核Q6600系统和Dell PowerEdge 2950(双Intel Xeon E5310四核)系统,运行从多媒体应用程序到多个基准测试的应用程序。实验结果表明,与Linux Standard Scheduler相比,我们的DTM方案将峰值温度降低了8%,性能开销为0.54%,而现有DTM方案将峰值温度降低了4%,性能开销高达50%。

著录项

  • 作者

    Yeo, In Choon.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Computer science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 145 p.
  • 总页数 145
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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